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本文引用的文献

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Simultaneous phenotyping of leaf growth and chlorophyll fluorescence via GROWSCREEN FLUORO allows detection of stress tolerance in Arabidopsis thaliana and other rosette plants.通过GROWSCREEN FLUORO对叶片生长和叶绿素荧光进行同步表型分析,能够检测拟南芥和其他莲座状植物的胁迫耐受性。
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Determination of the quantum efficiency of photosystem II and of non-photochemical quenching of chlorophyll fluorescence in the field.野外条件下光系统II量子效率及叶绿素荧光非光化学猝灭的测定
Oecologia. 1995 Jun;102(4):425-432. doi: 10.1007/BF00341354.
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The trehalose 6-phosphate/SnRK1 signaling pathway primes growth recovery following relief of sink limitation.海藻糖-6-磷酸/SnRK1 信号通路在解除库限制后启动生长恢复。
Plant Physiol. 2013 Jul;162(3):1720-32. doi: 10.1104/pp.113.220657. Epub 2013 Jun 4.
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Expansive evolution of the trehalose-6-phosphate phosphatase gene family in Arabidopsis.拟南芥海藻糖-6-磷酸磷酸酶基因家族的扩展性进化。
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Trehalose 6-phosphate is required for the onset of leaf senescence associated with high carbon availability.海藻糖-6-磷酸是与高碳可用性相关的叶片衰老起始所必需的。
Plant Physiol. 2012 Mar;158(3):1241-51. doi: 10.1104/pp.111.191908. Epub 2012 Jan 13.
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Determination of trehalose-6-phosphate in Arabidopsis seedlings by successive extractions followed by anion exchange chromatography-mass spectrometry.通过连续萃取然后进行阴离子交换色谱-质谱联用技术测定拟南芥幼苗中的海藻糖-6-磷酸。
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Inhibition of SNF1-related protein kinase1 activity and regulation of metabolic pathways by trehalose-6-phosphate.海藻糖-6-磷酸对SNF1相关蛋白激酶1活性的抑制及代谢途径的调控
Plant Physiol. 2009 Apr;149(4):1860-71. doi: 10.1104/pp.108.133934. Epub 2009 Feb 4.
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Trehalose 6-phosphate is indispensable for carbohydrate utilization and growth in Arabidopsis thaliana.海藻糖-6-磷酸对于拟南芥的碳水化合物利用和生长不可或缺。
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海藻糖途径对生长的调控:与温度和蔗糖的关系

Regulation of growth by the trehalose pathway: relationship to temperature and sucrose.

作者信息

Nunes Cátia, Schluepmann Henriette, Delatte Thierry L, Wingler Astrid, Silva Anabela B, Fevereiro Pedro S, Jansen Marcus, Fiorani Fabio, Wiese-Klinkenberg Anika, Paul Matthew

机构信息

Plant Biology and Crop Science; Rothamsted Research; Harpenden, Hertfordshire UK.

Molecular Plant Physiology; Utrecht University; Utrecht, The Netherlands.

出版信息

Plant Signal Behav. 2013;8(12):e26626. doi: 10.4161/psb.26626. Epub 2013 Oct 1.

DOI:10.4161/psb.26626
PMID:24084646
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4091418/
Abstract

Carbon signaling can override carbon supply in the regulation of growth. At least some of this regulation is imparted by the sugar signal trehalose 6-phosphate (T6P) through the protein kinase, SnRK1. This signaling pathway regulates biosynthetic processes involved in growth under optimal growing conditions. Recently, using a seedling system we showed that under sub-optimal conditions, such as cold, carbon signaling by T6P/ SnRK1 enables recovery of growth following relief of the stress. The T6P/ SnRK1 mechanism thus could be selected as a means of improving low temperature tolerance. High-throughput automated Fv/Fm measurements provide a potential means to screen for T6P/ SnRK1, and here we confirm through measurements of Fv/Fm in rosettes that T6P promotes low temperature tolerance and recovery during cold to warm transfer. Further, to better understand the coordination between sugars, trehalose pathway, and temperature-dependent growth, we examine the interrelationship between sugars, trehalose phosphate synthase (TPS), and trehalose phosphate phosphatase (TPP) gene expression and T6P content in seedlings. Sucrose, particularly when fed exogenously, correlated well with TPS1 and TPPB gene expression, suggesting that these enzymes are involved in maintaining carbon flux through the pathway in relation to sucrose supply. However, when sucrose accumulated to higher levels under low temperature and low N, TPS1 and TPPB expression were less directly related to sucrose; other factors may also contribute to regulation of TPS1 and TPPB expression under these conditions. TPPA expression was not related to sucrose content and all genes were not well correlated with endogenous glucose. Our work has implications for understanding acclimation to sink-limited growth conditions such as low temperature and for screening cold-tolerant genotypes with altered T6P/ SnRK1 signaling.

摘要

在生长调节过程中,碳信号传导能够超越碳供应的影响。至少部分这种调节作用是由糖信号海藻糖6-磷酸(T6P)通过蛋白激酶SnRK1来实现的。该信号通路在最佳生长条件下调节与生长相关的生物合成过程。最近,我们利用幼苗系统表明,在次优条件下,如低温环境中,由T6P/SnRK1介导的碳信号传导能够使植物在胁迫解除后恢复生长。因此,T6P/SnRK1机制有望被选为提高植物耐低温能力的一种手段。高通量自动Fv/Fm测量为筛选T6P/SnRK1提供了一种潜在方法,在此我们通过测量莲座叶的Fv/Fm证实,T6P能够促进植物在低温到温暖转变过程中的耐低温能力及恢复能力。此外,为了更好地理解糖类、海藻糖途径与温度依赖性生长之间的协调关系,我们研究了幼苗中糖类、海藻糖磷酸合酶(TPS)、海藻糖磷酸磷酸酶(TPP)基因表达与T6P含量之间的相互关系。蔗糖,尤其是外源供给时,与TPS1和TPPB基因表达密切相关,这表明这些酶参与维持与蔗糖供应相关的该途径中的碳通量。然而,当蔗糖在低温和低氮条件下积累到较高水平时,TPS1和TPPB的表达与蔗糖的直接关系减弱;在这些条件下,其他因素可能也有助于调节TPS1和TPPB的表达。TPPA的表达与蔗糖含量无关,且所有基因与内源葡萄糖的相关性都不好。我们的研究工作对于理解植物如何适应诸如低温等库限制型生长条件以及筛选具有改变的T6P/SnRK1信号传导的耐冷基因型具有重要意义。